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PMID: 12297106 Published · ppublish English Journal Article

Epicardial induction of fetal cardiomyocyte proliferation via a retinoic acid-inducible trophic factor.

Developmental biology ·Vol. 250 ·No. 1 ·2002-10-01 ·Pages 198-207

Chen T, Chang TC, Kang JO, Choudhary B, Makita T, Tran CM, Burch JB, Eid H, Sucov HM

Abstract

Mouse embryos lacking the retinoic acid receptor RXRalpha properly undergo the early steps of heart development, but then fail to initiate a proliferative expansion of cardiomyocytes that normally results in the formation of the compact zone of the ventricular chamber wall. RXRalpha(-/-) embryos have a hypoplastic ventricular chamber and die in midgestation from cardiac insufficiency. In this study, we have investigated the underlying mechanistic basis of this phenotype. We find that interference with retinoic acid receptor function in the epicardium of transgenic embryos recapitulates the hypoplastic phenotype of RXRalpha deficient embryos. We further show that wild type primary epicardial cells, and an established epicardial cell line (EMC cells), secrete trophic protein factors into conditioned media that stimulate thymidine incorporation in primary fetal cardiomyocytes, and thymidine incorporation, cell cycle progression, and induction of cyclin D1 and E activity in NIH3T3 cells. In contrast, primary epicardial cells derived from RXRalpha(-/-) embryos and an EMC subline constitutively expressing a dominant negative receptor construct both fail to secrete activity into conditioned media. The production of trophic factors is induced by retinoic acid treatment and is inhibited by a retinoid receptor antagonist. Fetal atrial and ventricular myocytes both respond to epicardial-derived trophic signaling, although postnatal cardiomyocytes are nonresponsive. We therefore propose that the fetal epicardium, in response to retinoic acid and in a manner requiring the activity of RXRalpha, secretes trophic factors which drive fetal cardiomyocyte proliferation and promote ventricular chamber morphogenesis.

MeSH Terms
3T3 Cells Animals Cell Division Cells, Cultured Chick Embryo Humans Keratins/genetics,physiology Mice Mice, Knockout Mice, Transgenic Pericardium/cytology Proteins/metabolism Receptors, Retinoic Acid/genetics,metabolism,physiology Retinoid X Receptors Transcription Factors/genetics,metabolism,physiology Tretinoin/metabolism,pharmacology Vascular Endothelial Growth Factor Receptor-2/genetics,physiology
Chemicals
Proteins Receptors, Retinoic Acid Retinoid X Receptors Transcription Factors Tretinoin Keratins Vascular Endothelial Growth Factor Receptor-2
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Chen Tim H P
Institute for Genetic Medicine, University of Southern California Keck School of Medicine, 2250 Alcazar St., IGM240, Los Angeles, California 90033, USA.
Chang Tsai-Ching
Kang Ji-One
Choudhary Bibha
Makita Takako
Tran Chanh M
Burch John B E
Eid Hoda
Sucov Henry M
Article Info
Journal
Developmental biology
Abbr.
Dev Biol
ISSN
0012-1606
Published
2002-10-01
Pages
198-207
Language
English
Region
United States
NLM ID
0372762
Subset
IM
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